MSH3 is a genetic modifier of somatic repeat instability in X-linked dystonia parkinsonism
MAZA, A. M.; Hincher, M.; Correia, K.; Gillis, T.; Nishiyama, A.; Penney, E. B.; Domingo, A.; Yadav, R.; Murcar, M. G.; Mercado, P.; Han, J. S.; Norenberg, E. P.; Fernandez-Cerado, C.; Legarda, G. P.; Sy, M.; Munoz, E.; Ang, M. C.; Diesta, C. C. E.; Go, C.; Sharma, N.; Bragg, D. C.; Talkowski, M. E.; MacDonald, M. E.; LEE, J.-M.; Ozelius, L. J.; Wheeler, V. C.
Show abstract
X-linked dystonia parkinsonism (XDP) is a progressive adult-onset neurogenerative disorder caused by the insertion of a SINE-VNTR-Alu (SVA) retrotransposon in TAF1 gene. One element of the SVA is a tandem polymorphic CCCTCT repeat tract whose length inversely correlates with the age of disease onset. Previous observations that the repeat exhibits length-dependent somatic expansion and that XDP onset is modified by variation in DNA repair gene MSH3 indicated that somatic repeat expansion is an important disease driver. Here, we sought to uncover genetic modifiers of CCCTCT instability in XDP patients and to provide a mechanistic link between somatic instability and disease. We determined quantitative metrics of both repeat expansion and repeat contraction in blood. Using genetic association analyses of exome sequencing data, as well as directed sequencing of a variant MSH3 repeat, we found that MSH3 modifies repeat expansion and contraction in blood as well as age at onset. MSH3 alleles associated with earlier disease onset were associated with more expansion and less contraction. Conversely, alleles associated with later disease onset were associated with less expansion and more contraction. Notably, MSH3 repeat alleles were also similarly associated with expansion and contraction in brain tissues. Our findings provide key evidence that MSH3s role(s) in CCCTCT repeat dynamics underlies its impact on clinical disease and indicate that therapeutic strategies to lower or inhibit MSH3 are predicted to both slow CCCTCT expansion and promote CCCTCT contraction, impacting the disease course prior to clinical onset.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Diagnostic Utility of Genome-wide DNA Methylation Analysis in Genetically Unsolved Developmental and Epileptic Encephalopathies and Refinement of a CHD2 Episignature 96%
- Saturation genome editing of DDX3X clarifies pathogenicity of germline and somatic variation 96%
- PMS1 as a target for splice modulation to prevent somatic CAG repeat expansion in Huntington's disease 95%
Similar papers in this journal
- Dominant variants in major spliceosome U4 and U5 small nuclear RNA genes cause neurodevelopmental disorders through splicing disruption 95%
- The impact of rare protein coding genetic variation on adult cognitive function 95%
- A common flanking variant is associated with enhanced meiotic stability of the FGF14-SCA27B locus 95%
Similar papers in this journal
- Long-read genome sequencing for the diagnosis of neurodevelopmental disorders 96%
- Accurate DNA Methylation Predictor for C9orf72 Repeat Expansion Alleles in the Pathogenic Range 94%
- Whole genome sequence-based association analysis of African American individuals with bipolar disorder and schizophrenia 94%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.